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The impact of valley geometry on daytime thermally driven flows and vertical transport processes

机译:谷地几何形状对白天热驱动流量和垂直运输过程的影响

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The influence of valley geometry on thermally driven flows is studied by means of high-resolution simulations. An idealized valley-plain topography and a spatially constant but time-dependent surface sensible heat flux are used to generate upslope, upvalley and plain-to-mountain winds. A systematic variation of valley depth, width and length induces differences in the cross- and along-valley flow field and thermal structure of the boundary layer. The deeper the valley, the stronger the upvalley winds and the more favoured the formation of vertically stacked circulation cells and an elevated valley inversion layer. Upvalley winds become weaker for wide valleys. The development of plain-to-mountain circulations increases vertical exchange processes between the boundary layer and the free atmosphere considerably, compared with vertical transport processes over a plain. The analysis of mass-flux budgets and forward trajectories indicates that mass is transported three to four times more effectively from the surface to the free atmosphere over valleys than over flat terrain. Vertical transport processes are strongest for deep and narrow valleys.
机译:通过高分辨率模拟研究了谷几何形状对热驱动流的​​影响。理想化的谷地地形和空间恒定但随时间变化的表面感热通量可用于产生上坡,上谷和平原到山上的风。谷深,宽度和长度的系统变化会引起跨谷和沿谷流场以及边界层热结构的差异。山谷越深,上谷风越强,形成垂直堆叠的循环单元和升高的山谷反演层越有利。大山谷的风向逐渐减弱。与平原上的垂直传输过程相比,平原到山间循环的发展大大增加了边界层与自由大气之间的垂直交换过程。对质量通量预算和前进轨迹的分析表明,相比于平坦的地形,质量从山谷到地面自由流动的质量要高出三到四倍。对于狭窄的深谷,垂直运输过程最强。

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